Integration of Virtual Engineering and Additive Manufacturing for Rapid Prototyping of Precision Castings

被引:1
|
作者
V Krutis [1 ]
Sprata, P. [1 ]
Kana, V [1 ]
Zadera, A. [1 ]
Cilecek, J. [2 ]
机构
[1] Brno Univ Technol, Brno, Czech Republic
[2] Alucast Sro, Tupesy, Czech Republic
关键词
Product development; Innovative foundry technologies; Virtual engineering; Rapid prototyping;
D O I
10.24425/afe.2021.136077
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The present paper is concerned with the practical interconnection between virtual engineering tools and additive model manufacturing technologies and the subsequent production of a ceramic shell by rapid prototyping with the use of Cyclone technology to produce the aluminium casting prototype. Prototypes were developed as part of the student formula project, where several parts originally produced by machining were replaced by castings. The techniques of topological optimization and the combination with the tools of the numerical simulation were used to optimise the virtual prototype before a real production of the first prototype. 3D printing of wax pattern ensured direct and fast assembly of the cluster without any additional operations and troubles during dewaxing. The shell was manufactured in 6 hours thanks to a system of quick-drying of individual layers of ceramic shell. It has been verified that the right combination of individual virtual tools with the rapid prototyping can shorten the development time and delivery of the first prototypes from a few months to a few weeks.
引用
收藏
页码:51 / 55
页数:5
相关论文
共 50 条
  • [31] Rapid Manufacturing and Virtual Prototyping of Pre-surgery Aids
    Zukowska, Magdalena
    Gorski, Filip
    Brominski, Gabriel
    WORLD CONGRESS ON MEDICAL PHYSICS AND BIOMEDICAL ENGINEERING 2018, VOL 3, 2019, 68 (03): : 399 - 403
  • [32] Rapid Prototyping of Small Wind Turbine Blades Using Additive Manufacturing
    Poole, Sean
    Phillips, Russell
    Proceedings of the 2015 Pattern Recognition Association of South Africa and Robotics and Mechatronics International Conference (PRASA-RobMech), 2015, : 189 - 194
  • [33] Metal additive manufacturing for the rapid prototyping of shaped parts: A case study
    Cicconi P.
    Mandolini M.
    Favi C.
    Campi F.
    Germani M.
    Computer-Aided Design and Applications, 2021, 18 (05): : 1061 - 1079
  • [34] High-precision rapid prototyping technology for manufacturing linear guides
    Chia-Ling Chen
    Jang-Ping Wang
    Guo-Ming Huang
    Ming-Hong Hsu
    Te-Tsun Chen
    The International Journal of Advanced Manufacturing Technology, 2017, 92 : 3137 - 3142
  • [35] High-precision rapid prototyping technology for manufacturing linear guides
    Chen, Chia-Ling
    Wang, Jang-Ping
    Huang, Guo-Ming
    Hsu, Ming-Hong
    Chen, Te-Tsun
    INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2017, 92 (9-12): : 3137 - 3142
  • [36] Additive manufacturing: Prototyping reimagined
    Chadha, Amit
    2020, CFE Media LLC (67) : 39 - 40
  • [37] High-precision rapid prototyping technology for manufacturing linear guides
    Wang, Jang-Ping (friction_w@hotmail.com), 1600, Springer London (92): : 9 - 12
  • [38] RAPID PROTOTYPING IN MANUFACTURING
    BECKERT, BA
    COMPUTER-AIDED ENGINEERING, 1994, 13 (04): : 16 - 16
  • [39] Integration of reverse engineering and topology optimization with additive manufacturing
    Shabani B.
    Dukovski V.
    Computer-Aided Design and Applications, 2022, 19 (01): : 164 - 175
  • [40] Additive Manufacturing Technologies: 3D Printing, Rapid Prototyping, and Direct Digital Manufacturing
    Cie, Christina
    JOURNAL OF PRINT AND MEDIA TECHNOLOGY RESEARCH, 2015, 4 (01): : 70 - 70